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I don't know where I am going wrong in else if logic... I want to validate this signup script in 3 steps:

1st: check if any field is empty, in which case include errorreg.php and register.php.

2nd: If email already exists include register.php.

3rd: If all goes well insert data to the database.

<?php
    $address =$_POST["add"];
    $password =$_POST["pw"];
    $firstname =$_POST["fname"];
    $lastname =$_POST["lname"];
    $email =$_POST["email"];
    $contact =$_POST["cno"];


    $con=mysql_connect("localhost","root","");
    mysql_select_db("bookstore");
    $q2=mysql_query("select * from customer where email='$email'");
    $b=mysql_fetch_row($q2);
    $em=$b[0];

   if($password != $_POST['pwr'] || !$_POST['email'] || !$_POST["cno"] || !$_POST["fname"] || !$_POST["lname"] || !$_POST["add"])
    {
        include 'errorreg.php';
        include 'register.php';
    }

    else if($em==$email)
    {
        echo 'email already present try another';
        include 'register.php';
    }
    else
    {
        $con=mysql_connect("localhost","root","");
        mysql_select_db("bookstore");
        $q1=mysql_query("insert into customer values('$email','$password','$firstname','$lastname','$address',$contact)");

        echo 'query completed';
        $q2=mysql_query("select * from customer where email='$email'");
        $a=mysql_fetch_row($q2);
        print "<table border =2px solid red> <tr><th>id </th></tr>";
        print "<td>$a[0]</td>";

        print "</table>";
        include 'sucessreg.php';
        echo " <a href='newhome.php'>goto homepage</a>";
    }

?>
share|improve this question
    
What is happening instead? What error message or unexpected behavior are you seeing? –  dimo414 Aug 18 '12 at 20:20
    
only the first part is working .. loop dosent go to the second and third step –  zack Aug 18 '12 at 20:30

2 Answers 2

up vote 1 down vote accepted

There's a lot to correct here, but to your specific concern, that the "loop" doesn't go on to the second and third "steps", that's because you're thinking about this wrong. In an if/else if/else code block, only one of the blocks is executed at a time, the others are not. For instance, if a user submitted a number, we could tell them it was even or odd with the following:

if($_GET['number'] % 2 == 0){
  echo "That's even!";
} else {
  echo "That's odd!";
}

You are attempting to do one check, then another, then a third. In this case, you want to nest your conditionals (if statements) rather than have them come one after another, like so:

if(/* first, basic sanity check*/) {
  if(/* second, more complex check */) {
    if(/* final check */) {
      // Database update
    } else {
      // Failed final check
    }
  } else {
    // Failed second check
  }
} else {
  // Failed basic check
}

Some other comments on your code:

  1. Pay attention to formatting - laying out your code in consistent and visually clear patterns will help make it easier to see when you make a mistake.
  2. Use isset($_POST['variable']) before using $_POST['variable'], otherwise you'll get errors. One idea is to use lines like: $address = isset($_POST['address']) ? $_POST["add"] : ''; - if you don't know that notation, it lets you set $address to either the value from the $_POST array or '' if it's not set.
  3. Use the variables you created, like $email and $contact, rather than re-calling the $_POST variables - they're clearer, shorter variable names.
  4. Use the better MySQLi library, rather than the MySQL library.
  5. Create one connection ($con = ...) to your database at the beginning of your script, and don't create a second one later on, like you do here.
  6. Explicitly specify which connection your queries are running against - you say $q2=mysql_query("SELECT ...") but you should also pass the connection you've constructed, $q2=mysql_query("SELECT ...",$con).
share|improve this answer
    
hey thanx dude thats more like it..... –  zack Aug 18 '12 at 20:46

First of all you want to check if the property isset in your $_POST object:

if(isset($_POST["name"])

second you want to check if the value set is empty

if(isset($_POST["name"] && !empty($_POST["name"]))

now you just have to scale it up to check all your properties it would be handy to move it into a function like this

function ispostset($post_var)
{
if (isset($_POST[$post_var]))
{
    if ($_POST[$post_var] != '')
    {
        return true;
    }
    else
        return false;
}
else
    return false;
}
share|improve this answer
    
thnx man got the logic..:-) –  zack Aug 18 '12 at 20:34
    
great and thx for the edit hookman :) –  bsthomsen Aug 18 '12 at 20:40
    
condense that to just if (isset($_POST[$post_var])) { return $_POST[$post_var] != ''; } return false;, no need for else and 3 return statements, or just return isset($_POST[$post_var])) && $_POST[$post_var] != ''; –  tigrang Aug 18 '12 at 20:41
    
Well it was to give him an simple understanding of what was going on.. The code your suggesting is smart - but harder to read for the untrained programmer.. –  bsthomsen Aug 18 '12 at 20:43
    
Easier to understand, yes. But show the alternative way so bad habits aren't formed :) –  tigrang Aug 18 '12 at 20:44

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